An aircraft wing box spanwise joint, comprising a rib having a web, and a pair of rib fittings joined together, each rib fitting forming a closed loop around the periphery of the rib, wherein the rib is integrally formed with one of the rib fittings. Also, an aircraft wing including two or more of the joints. Also, a method of forming an aircraft wing box spanwise joint, the method comprising forming a pair of rib fittings, wherein one of the rib fittings is integrally formed with a rib having a web, each rib fitting forming a closed loop around the periphery of the rib, bringing the rib fittings together, and joining the rib fittings together.
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1. An aircraft wing box spanwise joint comprising a rib having a web, and a pair of rib fittings, wherein the rib is integrally formed with one of the rib fittings, each rib fitting including a planar abutment surface and a spanwise projecting flange forming a closed loop around the periphery of the rib, and wherein the rib fittings are joined back-to-back by their planar abutment surfaces.
13. A method of forming an aircraft wing box spanwise joint, the method comprising forming a pair of rib fittings, wherein one of the rib fittings is integrally formed with a rib having a web, each rib fitting including a planar abutment surface and a spanwise projection flange forming a closed loop around the periphery of the rib, bringing the rib fittings together, and joining the rib fittings together in back-to-back relation by their planar abutment surfaces.
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The present application is a National Phase of International Application Number PCT/GB2011/051046, filed Jun. 3, 2011, and claims priority from British Application Number 1009922.4, filed Jun. 14, 2010.
The present invention relates to an aircraft wing box spanwise joint. The invention also relates to an aircraft wing including two or more of the joints, and a method of forming the joint.
An aircraft wing box typically includes a front spar, a rear spar, upper and lower covers (skins), spanwise stiffeners (stringers), and chordwise ribs. The wing box structure is typically manufactured in sections, which are joined together. Most commercial airliners have three wing box sections—a centre wing box structure in the fuselage and two lateral (left and right) wing box structures. However, the centre and/or lateral wing box structures may themselves comprise several wing box sections joined together by one or more spanwise joints.
In the typical three wing box section arrangement, the lateral wing box structures are joined to either side of the centre wing box structure by a “root joint”.
In a prior art arrangement shown in
The covers and spars of the centre wing box and of the lateral wing box are typically joined to the root rib by several fittings.
A plurality of corner fittings 112 are used to connect the wing boxes 101, 106 to opposite sides of the root rib 111. The base of each fitting 112 is fastened to one of the covers 102, 103, 107, 108 and to the foot of one of the stringers 104, 105, 109, 110. The end of each fitting 112 is fastened to the root rib 111. The side of each fitting 112 is fastened to the blade of one of the stringers 104, 105, 109, 110. The fasteners have been omitted from
As can be seen from
In more unconventional aircraft, which comprise several wing box structures joined together by spanwise joints (whether or not they appear at the actual wing root), the above-mentioned problems with the prior art spanwise joints are also evident.
There is therefore a need for an improved wing box spanwise joint, which addresses some or all of the above problems in the prior art.
A first aspect of the invention provides an aircraft wing box spanwise joint comprising a rib having a web, and a pair of rib fittings joined together, each rib fitting forming a closed loop around the periphery of the rib, wherein the rib is integrally formed with one of the rib fittings
A further aspect of the invention provides an aircraft wing including two or more of the joints.
A yet further aspect of the invention provides a method of forming an aircraft wing box spanwise joint, the method comprising forming a pair of rib fittings, wherein one of the rib fittings is integrally formed with a rib having a web, each rib fitting forming a closed loop around the periphery of the rib, bringing the rib fittings together, and joining the rib fittings together.
The invention is advantageous in that sections of an aircraft wing box may be joined together more easily with fewer parts, reducing weight, part count and assembly time.
Each rib fitting may include a spanwise projecting flange. Since the aircraft wing may have dihedral or sweep, the flange will generally not be perpendicular to the web. However, it may be perpendicular depending on the aircraft wing design. The flange may form a closed loop around the periphery of the rib.
In a preferred embodiment, each rib fitting has a substantially L-shaped cross-section extending around the rib to form the closed loop. The rib fittings may each have a planar abutting surface such that the rib fittings may be joined back-to-back with their surfaces abutting. This allows for a simple joint construction, which can be readily assembled and disassembled for maintenance.
The rib fittings may be joined together by fastening. Preferably, each rib fitting has a plurality of fastener receiving holes around the periphery of the rib. These are preferably formed in the abutting surfaces of the rib fittings.
Since the rib is integrally formed with only one of the rib fittings, the other rib fitting may have a central void. Alternatively, the other rib fitting may include cross bracing for additional strength, where desired. The void provides weight saving.
Stiffeners may be provided for supporting the rib web. Preferably, the stiffeners are integrally formed with the rib web.
The joint may be used to join two wing box structures, wherein each rib fitting forms part of a respective one of the wing box structures. Each wing box structure may be a centre or lateral wing box structure, or part thereof. In one embodiment, the joint is a root joint between a centre wing box structure and a lateral wing box structure.
Each wing box structure may include wing box covers, and the rib fittings may be attached to the covers of their respective wing box structure.
Each wing box structure may include wing box spars, and the rib fittings may be attached to the spars of their respective wing box structure.
In the method, each rib fitting may form part of a wing box structure, and the method may further comprise attaching each rib fitting to the remainder of its wing box structure. Furthermore, each rib fitting may be attached to the remainder of its wing box structure prior to joining the rib fittings together. In this way, various wing box subassemblies can be formed, each including one or more interfacing rib fittings. The subassemblies can be joined together by forming the joint with the interfacing rib fittings so as to construct a completed wing box assembly.
Embodiments of the invention will now be described with reference to the accompanying drawings, in which:
The centre wing box 4 includes a front spar (not shown), a rear spar 13, an upper wing box cover 14, and a lower wing box cover 15. The upper and lower covers 14, 15 of the centre wing box structure 4 are also supported by spanwise stiffeners (not shown). Although not shown in
As can be seen from
The spanwise flange 20 of the centre wing box rib fitting 16 is continuous around its rib web 18. The spanwise flange 20 includes upper 23, lower 24, front 25 and rear 26 flange portions. The upper flange portion 23 is attached to the upper cover 14, the lower flange portion 24 is attached to the lower cover 15, the front flange portion 25 is connected to the front spar (not shown) and the rear flange portion 26 is attached to the rear spar 13 of the centre wing box structure 4.
The spanwise flange 22 of the lateral wing box rib fitting 17 is continuous around the rib web 18 and includes upper 27, lower 28, front 29 and rear 30 flange portions. The upper flange portion 27 is attached to the upper cover 10, the lower flange portion 28 is attached to the lower cover 9, the front flange portion 29 is attached to the front spar 7 and the rear flange portion 30 is attached to the rear spar 8 of the lateral wing box 3.
The spanwise flanges 20 and 22 are tapered in the direction away from the rib web 18 to provide a smooth load transition from the joint 2 into the remainder of their respective wing box structures 3, 4.
The upright flange 18a of the integral rib and rib fitting 16/18 has a substantially planar interfacing surface 18b facing the rib fitting 17. The rib web 18 has a reduced thickness compared to the upright flange 18a which surrounds it. The rib web 18 has a ramped portion 18c to provide a smooth load transition from the joint 2 into the rib web 18.
The upright flange 21 of the lateral wing box rib fitting 17 has a substantially planar interfacing surface 21 a facing towards the rib fitting 16.
A method of forming an aircraft wing box spanwise joint will now be described. The rib fitting 17 and the integral rib and rib fitting 16/18 are each formed as integral, unitary components. The centre wing box rib and rib fitting 16/18 is attached by its spanwise flange 20 to the remainder of the centre wing box structure 4 as previously described. Similarly, the lateral wing box rib fitting 17 is attached by its spanwise flange 22 to the remainder of the lateral wing box structure 3. The centre wing box structure 4 is typically formed as a subassembly attached to the fuselage frames 6 prior to attachment of the wings on the aircraft final assembly line.
The wing subassemblies are then brought into position so as to attach the wings to the fuselage. During this process the lateral wing box rib fitting 17 is brought into abutment with the centre wing box integral rib and rib fitting 16/18 such that the interfacing substantially planar upright flange surfaces 21a and 18b abut. The pre-drilled rows of fastener holes 31 and 32 will be brought into alignment during this process such that fasteners may be disposed through the rows of fastener holes 31 and 32 to thereby join the lateral wing box structure 3 to the centre wing box structure 4 via a tension type joint. This is repeated on the other side of the centre wing box structure 4 for attachment of the other lateral wing box (not shown).
The spanwise flanges 20 and 22 of the rib fittings 16 and 17 effectively act to replace the rows of fittings 112 and 114 shown in the prior art arrangement of
As is conventional, the wing box structures 3 and 4 are used as fuel tanks for the aircraft 1. The large number of individual components and fasteners in the prior art joint shown in
By removing the dependency of the fastener holes on the stringer alignment, the joint 2 provides improved access for fastener tools for joining the rib fittings 16 and 17 together. By positioning the rows of fasteners receiving holes 31 and 32 around the periphery of the rib web 18 the time required on the aircraft final assembly line to join the lateral wing box structure 3 to the centre wing box structure 4 may be significantly reduced.
The rib fitting 17 and the integral rib and rib fitting 16/18 can be formed of composite material or more traditional metallic materials. In the case of composite structural design, these parts can be accurately formed by resin transfer moulding (RTM). Alternatively, it will be appreciated that other composite manufacturing techniques may be used. In the case of metallic construction, these parts may be formed by machining, forging or casting, for example. In the case of forming the parts 17 and 16/18 by RTM, this provides a low cost and highly repetitive and controllable tolerance process. When made from composite material by RTM, it becomes possible to eliminate galvanic corrosion and thermal expansion incompatibilities that can be evident in hybrid (composite and metallic) wing box arrangements.
By providing the stiffeners 33 integral with the part 16/18, part count and weight are reduced.
It will be appreciated that the stiffeners will not always be required, depending on the load in the rib web. Alternatively, the stiffeners may be separate components attached to the web. It will further be appreciated that the rib fitting 17 may also be integrally formed with a rib web to form a second integral rib and rib fitting. Alternatively, the rib fitting 17 may have cross bracing (integral or otherwise) for supporting greater load.
Whilst in the embodiment described above, which relates to a root joint, the rib fittings are joined by fasteners, it will be appreciated that the ribs could be joined together in other ways. Releasable fasteners are beneficial in the case of a root joint such that the joint can be disassembled for maintenance or inspection purposes. However, where the wing box structures are manufactured in sections which are joined together on the final assembly line and which are not intended to be disassembled thereafter, there will be no need for releasable fasteners to be used. In this instance, the back-to-back rib fittings may be joined by bonding or using non-releasable fasteners, for example.
Although the invention has been described above with reference to one or more preferred embodiments, it will be appreciated that various changes or modifications may be made without departing from the scope of the invention as defined in the appended claims.
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